Deep sea anti-storm ship type intelligent net cage

By designing ship-shaped intelligent net cages for deep-sea environments and utilizing aquaculture frames and mooring systems, the problem of easy damage to deep-sea net cages has been solved, achieving efficient utilization of aquaculture space and improved resistance to wind and waves, as well as intelligent management.

CN223799058UActive Publication Date: 2026-01-16ZHOUSHAN ZHOUFENG OCEAN RANCH CO LTD
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Patent Information

Application Number
CN202520181676.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-06
Publication Date
2026-01-16
Estimated Expiration
2035-02-06

AI Technical Summary

Technical Problem

Existing deep-sea cages are easily damaged when subjected to environmental loads from different directions, and there is room for improvement in the scale of aquaculture and space utilization.

Method used

The design incorporates a deep-sea, wave-resistant intelligent net cage system. It features a built-in net cage within an aquaculture frame, combined with floating pipes, limiting mesh plates, and an anchoring system to achieve net cage separation and protection. Buoys and buoys provide positional information, forming a hull structure that reduces direct impact and enhances wave resistance.

Benefits of technology

It improves the utilization rate of aquaculture space, enhances the wind and wave resistance of net cages, ensures the stability and safety of aquaculture equipment, and realizes intelligent management.

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Abstract

The utility model provides a deep sea anti-storm ship type intelligent net cage, which belongs to the technical field of aquaculture, and comprises net cages, the net cages are placed in a culture assembly, the culture assembly comprises a culture frame with a through upper part, and at least two net cages can be accommodated in the culture frame. The upper portion of the breeding frame is detachably connected with a limiting net plate. According to the utility model, the breeding space and breeding types are expanded, the utilization rate of the breeding space is improved, and the overall anti-storm performance of the device is improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the aquaculture technical field, concretely relates to a deep sea anti storm ship type intelligent net cage. BACKGROUND

[0002] There are two ways for human beings to obtain fishery benefits or aquatic food from the sea: one is fishing, and the other is aquaculture. Marine fishing is a "gift" given by the sea to human beings. Due to overfishing for a long time, fishery resources are in a state of depletion. Aquaculture is a crystallization of human wisdom, a production mode adopted to ensure sufficient food and social development of food security supply, and a mainstream direction of marine industry development. Deep sea net cage is a representative of advanced productive forces in many marine aquaculture methods. At present, sea urchins, sea cucumbers, yellow croakers, abalones and other marine delicacies are generally cultured in deep sea net cages. Therefore, many culture tools such as deep sea culture net cages have been developed. However, the net cages on the market have poor environmental load capacity, and are prone to damage when facing environmental load in different directions.

[0003] The prior art provides many solutions for the above problems. For example, the prior art KR1020240093363 discloses an anti-wave intelligent control deep sea net cage and a control method. The utility model can automatically identify the motion state and the surrounding sea wave environment, tune the multi-liquid column damper in the stand column with the sea wave frequency, change the inherent frequency of the damper in real time, provide recovery torque for the deep sea net cage, improve the stability of the deep sea net cage under complex sea wave excitation frequency, and prolong the service life of the deep sea net cage. The damping frequency band of the damper is widened, and the defect of single damping frequency of the traditional deep sea net cage is overcome. However, the means provided by the prior art still has room for improvement in terms of expanding the culture scale. UTILITY MODEL CONTENTS

[0004] The utility model aims to provide a deep sea anti storm ship type intelligent net cage, expand the culture space and culture species, realize the improvement of culture space utilization rate and the improvement of the overall anti storm performance of the device.

[0005] To solve the above technical problems, the utility model concretely provides the following technical scheme:

[0006] The deep sea anti storm ship type intelligent net cage comprises a net cage, the net cage is placed in a culture assembly, the culture assembly comprises an upper through culture frame, the culture frame can accommodate at least two net cages, and the upper culture frame is detachably connected with a limiting net plate.

[0007] The utility model discloses a breeding frame is placed in the breeding frame inside to carry out the cultivation, can according to the cultivation demand and carry out the mixed culture of different cultivation things, and adopts the net case and separates, will not cause the cultivation thing loss, effectively utilizes the cultivation space of breeding frame, corresponding different type cultivation such as cage, can carry out cultivation in the net case or the surplus position of breeding frame, such cultivation space utilization rate is guaranteed, and the breeding frame can play the protection function to its inside net case, the anti -wind and wave performance of device in the deep sea can obtain the promotion and guarantee that the cultivation equipment is not destroyed.

[0008] According to an embodiment of the utility model, the breeding frame has a vertical floating pipe for ensuring the buoyancy of the breeding frame.

[0009] According to an embodiment of the utility model, the upper end of the floating pipe has an assembly column, the lower end of the limiting net plate has a first extension column matched with the assembly column, and the first extension column is connected with the assembly column by a first fastener. The provided assembly column can be detachably connected with the limiting net plate, specifically by the first fastener. This limits the upper part of the breeding frame, avoids the breeding net case from separating from the breeding frame and causing cultivation loss, and can protect the internal net case by the limiting net plate and the breeding frame and avoid marine organisms from preying on the cultivated organisms or damaging the net case structure.

[0010] According to an embodiment of the utility model, the side of the breeding assembly is connected with a buoy through a first connecting rope, and the buoy can be used to receive signals and feed back information such as the coordinates of the cultivation equipment, without the need for personnel to blindly search, realizing intelligent cultivation.

[0011] According to an embodiment of the utility model, the side of the breeding assembly is connected with a first floating ball through a first connecting rope, the first floating ball is connected with a second connecting rope through the first connecting rope, and the two ends of the second connecting rope are connected with anchor piles. This way, an anchor system is formed, which can ensure that the cultivation equipment moves within a certain range in the deep sea but is not lost. The provided first floating ball can provide buoyancy to reduce the floating of the first rope in water, thereby reducing the probability of knotting of the first rope.

[0012] According to an embodiment of the utility model, a first ring is arranged on the first connecting rope between the first floating ball and the second connecting rope. The first ring has a certain weight and can relatively straighten the first connecting rope in water to reduce the probability of knotting of the first rope.

[0013] According to an embodiment of the utility model, the second rope has at least one knot. This can realize multiple connection positions on the two anchor piles, that is, multiple deep-sea anti-wave ship type intelligent net cases can be arranged. Of course, a certain interval distance is ensured between adjacent deep-sea anti-wave ship type intelligent net cases, and anchor piles can be added to ensure the stability of the anchor system if the length is relatively long.

[0014] According to an embodiment of the utility model, the first floating ball is connected with a positioning floating ball through an auxiliary rope body, and the positioning floating ball is used for providing the coordinates of the device in the deep sea to facilitate accurate finding of the device.

[0015] According to an embodiment of the utility model, the aquaculture frame is connected with a float pipe through a second rod body, and the aquaculture frame forms a ship body structure mode, so that the aquaculture frame can better pass through both sides of the aquaculture frame to reduce or avoid direct impact on the front of the aquaculture frame in the wind and wave in water, so as to reduce the deformation probability of the net cage and improve the fluid flow rate around the net cage, and facilitate the continuous and stable use of the aquaculture device in the deep sea.

[0016] According to an embodiment of the utility model, the aquaculture frame and the limiting net plate are both provided with a mesh, which is used for ensuring the safety of aquaculture and preventing the escape of aquaculture organisms.

[0017] Compared with the prior art, the utility model has the beneficial effects that: the aquaculture net cage is placed in the aquaculture frame for aquaculture, different aquaculture animals can be mixed according to the aquaculture demand, the aquaculture space of the aquaculture frame is effectively utilized, different types of aquaculture such as cages can be carried out in the spare position of the net cage or the aquaculture frame, the utilization rate of the aquaculture space is ensured, the aquaculture frame can protect the net cage inside, the wind and wave resistance of the device in the deep sea can be improved, and the aquaculture equipment is protected from being damaged.

[0018] The device of the utility model realizes that the aquaculture frame forms a ship body structure mode, so that the aquaculture frame can better pass through both sides of the aquaculture frame to reduce or avoid direct impact on the front of the aquaculture frame in the wind and wave in water, so as to reduce the deformation probability of the net cage and improve the fluid flow rate around the net cage, and facilitate the continuous and stable use of the aquaculture device in the deep sea. BRIEF DESCRIPTION OF DRAWINGS

[0019] In order to more clearly illustrate the embodiments of the utility model or the technical solutions in the prior art, the drawings needed in the following embodiment or prior art description will be briefly introduced. Obviously, the drawings in the following description are only exemplary, and those skilled in the art can also obtain other implementation drawings according to the provided drawings without creating creative labor.

[0020] Figure 1 It is a deep sea wind and wave resistant ship type intelligent net cage schematic diagram of the utility model;

[0021] Figure 2 It is an aquaculture assembly split scheme schematic diagram of the utility model;

[0022] Figure 3The utility model discloses a limiting net plate structure schematic diagram.

[0023] Figure 4 The utility model discloses a breeding frame structure schematic diagram.

[0024] Figure 5 The utility model discloses a net cage and limiting assembly assembly schematic diagram.

[0025] Figure 6 The utility model discloses a limiting assembly structure schematic diagram.

[0026] Figure 7 The utility model discloses a spring and limiting sleeve scheme schematic diagram.

[0027] Mark explanation:

[0028] 10. breeding assembly;11. first fastener;12. limiting net plate;13. first extension column;14. breeding frame;15. float pipe;16. second float ball;17. assembly column;18. first rod body;19. second rod body;20. float mark;30. first connecting rope body;31. first float ball;32. first ring body;33. anchor pile;34. second connecting rope body;40. positioning float ball;50. net cage;60. limiting assembly;61. first limiting rod;62. limiting protrusion;63. limiting clamping plate;64. limiting sleeve;65. limiting pivot;66. limiting through -hole;67. limiting rope body;68. spring. Specific implementation

[0029] The technical scheme in the embodiments of the utility model will be apparently and completely described in combination with the drawings in the embodiments of the utility model, and obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the person skilled in the art without creative work belong to the range of protection of the utility model.

[0030] The concepts related to the application will be explained in combination with the drawings. It is pointed out that the following explanations of the concepts are only for the purpose of making the content of the application easier to understand, and do not represent the limitation of the protection scope of the application. Meanwhile, the embodiments in the application and the features in the embodiments can be combined with each other without conflict. The application will be explained in detail in combination with the embodiments and the drawings.

[0031] Embodiment 1:

[0032] As Figures 1-4 shown, the utility model provides deep sea anti -wind wave ship type intelligent net cage.

[0033] The deep-sea anti-wave ship type intelligent net cage comprises a net cage 50, the net cage 50 is placed in a breeding assembly 10, the breeding assembly 10 comprises an upper through breeding frame 14, the breeding frame 14 can accommodate at least two net cages 50, and the upper breeding frame 14 is detachably connected with a limiting net plate 12.

[0034] The breeding net cage 50 is placed in the breeding frame 14 for breeding, different breeding animals can be mixed according to breeding requirements, the breeding space of the breeding frame 14 is effectively utilized, different types of breeding such as cages can be bred in the net cage 50 or the spare position of the breeding frame 14, the breeding space utilization rate is ensured, the breeding frame 14 can protect the net cage 50 inside, the anti-wave performance of the device in the deep sea can be improved, and the breeding equipment is not damaged.

[0035] In the embodiment, underwater monitoring cameras and temperature-salinity-depth water quality sensors can be arranged in the breeding frame 14 to monitor the inside of the breeding frame 14.

[0036] The breeding frame 14 has a vertically arranged floating pipe 15 for providing buoyancy to the breeding frame 14.

[0037] In the embodiment, an electric air compressor can be arranged on the breeding frame 14, the floating pipe 15 is inflated or deflated through remote control to adjust the overall buoyancy of the breeding frame 14, and the breeding frame 14 can be submerged to resist bad weather.

[0038] The upper end of the floating pipe 15 has an assembly column 17, the lower end of the limiting net plate 12 has a first extension column 13 matched with the assembly column 17, and the first extension column 13 is connected with the assembly column 17 by a first fastener 11. The assembly column 17 can be detachably connected with the limiting net plate 12, and is detachably connected by the first fastener 11. The upper part of the breeding frame 14 is limited, the net cage 50 for breeding is prevented from separating from the breeding frame 14 to cause breeding loss, and the net cage 50 inside is protected by the limiting net plate 12 and the breeding frame 14 to prevent marine organisms from preying on breeding organisms or damaging the structure of the net cage 50.

[0039] The breeding assembly 10 is connected with a buoy 20 through a first connecting rope 30, the buoy 20 can be used for receiving signals and feeding back information such as coordinates of the breeding equipment, personnel do not need to blindly search, and intelligent breeding is realized.

[0040] The first connecting rope 30 is connected with the first floating ball 31 on the side of the breeding assembly 10, the first floating ball 31 is connected with the second connecting rope 34 through the first connecting rope 30, and the second connecting rope 34 is connected with the anchor 33 at both ends. In this way, the anchoring is formed, so that the breeding equipment can move within a certain range in the deep sea area but not lost, and the first floating ball 31 can provide buoyancy to reduce the probability of knotting of the first rope 31 in water.

[0041] The first connecting rope 30 between the first floating ball 31 and the second connecting rope 34 is provided with the first ring 32. The first ring 32 has a certain weight, which can relatively straighten the first connecting rope 30 in water to reduce the probability of knotting of the first rope 31.

[0042] The second rope 34 has at least one knot. In this way, multiple connection positions can be formed on the two anchors 33, that is, multiple deep-sea anti-wind and wave ship type intelligent net cages can be arranged. Of course, a certain interval distance should be ensured between adjacent deep-sea anti-wind and wave ship type intelligent net cages. If the length is relatively long, the anchor 33 can be increased to ensure the stability of the anchoring.

[0043] The first floating ball 31 is connected with the positioning floating ball 40 through the auxiliary rope, and the positioning floating ball 40 is used to provide the coordinates of the device in the deep sea to facilitate accurate finding of the device.

[0044] The breeding frame 14 is connected with the float pipe 15 through the second rod 19 on the side, so that the breeding frame 14 forms a ship body structure, so that the wind and wave in water can pass through the two sides of the breeding frame 14 to reduce or avoid directly impacting the front of the breeding frame 14, so as to reduce the probability of deformation of the net cage and improve the fluid flow rate around the net cage, which is beneficial to the continuous and stable use of the breeding device in the deep sea.

[0045] The breeding frame 14 and the limiting net plate 12 are both provided with a mesh, which is used to ensure the safety of breeding and prevent the escape of breeding organisms.

[0046] Embodiment 2:

[0047] This embodiment provides a further scheme on the basis of embodiment 1, referring to the accompanying drawings. Figure 4 As shown in the drawings, the breeding frame 14 has four vertically arranged float pipes 15, the upper and lower ends of the float pipe 15 are both provided with assembly columns 17, the adjacent assembly columns 17 are connected through connecting rod bodies, so that the upper and lower ends of the float pipe 15 both have a rectangular structure composed of connecting rod bodies, which builds the basic structure of the breeding frame 14. Based on this, the connecting rod bodies at the bottom of the float pipe 15 are cross-connected through the first rod 18, so that the rod body is arranged at the bottom of the breeding frame 14 to avoid that the placed net cage 50 is separated from the breeding frame 14, and the cross-connected first rod 18 can form a certain water flow space to ensure the exchange and flow of water.

[0048] Furthermore, the upper and lower ends of the floating tube 15 are connected by the first rod 18 arranged in an array to enhance the overall strength of the aquaculture frame 14 and to arrange rods in the side space of the aquaculture frame 14 to prevent the net cage 50 from detaching from the side of the aquaculture frame 14.

[0049] Connecting rods are provided between adjacent floating tubes 15 to enhance the structural strength of the aquaculture frame 14.

[0050] See appendix Figure 4 As shown, a second float 16 is connected to the first rod 18 or the connecting rod via a rope to increase the buoyancy of the aquaculture frame 14. The suspension height of the aquaculture frame 14 in the water can also be adjusted by increasing or decreasing the number of the second floats 16. For example, as the weight of the aquaculture organisms in the aquaculture frame 14 increases, the number of the second floats 16 can be increased to ensure that the aquaculture frame 14 is maintained at a certain height in the water, thus preventing the aquaculture frame 14 from continuously sinking in the water.

[0051] Example 3:

[0052] See appendix Figure 5 As shown, there are at least two net cages 50 inside the aquaculture frame 14, which can expand the aquaculture volume and the types of aquaculture. After multiple net cages 50 for aquaculture are placed inside the aquaculture frame 14, a limiting component 60 is provided between adjacent net cages 50, or a limiting component 60 is provided between the net cage 50 and the aquaculture frame 14.

[0053] See appendix Figures 6-7 As shown, the limiting assembly 60 includes two first limiting rods 61 arranged opposite to each other. The two first limiting rods 61 are coaxially arranged, and the adjacent end faces of the two first limiting rods 61 are connected by a spring 68. A limiting sleeve 64 is sleeved on the outside of the spring 68. The two ends of the limiting sleeve 64 are sleeved with the first limiting rods 61. The length of the limiting sleeve 64 is greater than the maximum deformation length of the spring 68.

[0054] The first limiting rod 62 has a limiting protrusion 62 at the end that does not contact the spring 68. The limiting protrusion 62 has limiting plates 63 on both sides. The two limiting plates 63 are connected to the limiting protrusion 62 by a limiting shaft 65. The limiting protrusion 62 has a through hole for assembly with the limiting shaft 65, and the limiting plates 63 have a through hole for assembly with the limiting shaft 65.

[0055] The ends of the two limiting plates 63 are also provided with limiting through holes 66. Limiting ropes 67 are inserted into the limiting through holes 66. After the two limiting plates 63 come into contact with the frame structure of the net cage 50, the limiting ropes 67 pass through the limiting through holes 66 and bind the two limiting plates 63 to the frame structure of the net cage 50 to form a connection.

[0056] The limiting clamping plate 63 is provided with a strip-shaped anti-skid pattern on the surface in contact with the net cage 50. The limiting clamping plate 63 can be a plate body structure with an arc, so as to ensure the effective contact between the limiting clamping plate 63 and the net cage 50.

[0057] The plurality of net cages 50 are arranged in the breeding frame 14. The adjacent net cages 50 or the net cage 50 and the breeding frame 14 can collide due to the water flow. The limiting assembly 60 can control the adjacent interval distance of the net cages 50 and solve the collision problem with other components. The limiting clamping plate 63 and the limiting rope body 67 of the limiting assembly 60 can form a connection relationship with the net cage 50, the adjacent breeding frame 14 or the adjacent net cage 50. When the adjacent components are displaced, the impact force can be transmitted to the limiting clamping plate 63 and further transmitted to the first limiting rod and the spring 68. The mutual displacement force of the adjacent net cages 50 is consumed through the spring 68, so as to avoid the collision between the adjacent net cages 50 or the net cage 50 and the breeding frame 14.

[0058] The two first limiting rods 62 can ensure the interval distance between the net cage 50 and the adjacent net cage 50 or the breeding frame 40, and help the water exchange.

[0059] It should be noted that the terms used in the present application are only for describing specific embodiments, and are not intended to limit the scope of the present application. As shown in the specification of the present application, unless the context clearly indicates otherwise, the terms "one", "a", "an" and / or "the" do not specifically refer to the singular, but also include the plural. The terms "include", "contain" or any other variants thereof are intended to cover non-exclusive inclusion, so that the process, method or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed, or further includes elements inherent to such process, method or device. Without more limitations, the element defined by the statement "including a" does not exclude the presence of other identical elements in the process, method or device including the element.

[0060] It should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", and the like, indicate relative positions or orientations based on the positions or orientations shown in the drawings, and are used only to facilitate the description of the application and simplify the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the application. Unless otherwise expressly specified and limited, the terms "mounting", "connecting", "connecting" and the like should be broadly interpreted, for example, they can be fixedly connected, or detachably connected, or integrally connected; can be mechanically connected, or electrically connected; can be directly connected, or indirectly connected through an intermediate medium; can be internal communication of two elements. For those skilled in the art, the specific meanings of the above terms in the application can be understood according to the specific circumstances.

[0061] The above embodiments and / or implementations are only used to illustrate the preferred embodiments and / or implementations of the present application, and do not limit the embodiments of the present application in any form. Any person skilled in the art can make some changes or modifications to other equivalent embodiments without departing from the scope of the technical means disclosed in the present application, but should be considered as the same technical or embodiment as the present application.

[0062] The principles and implementations of the present application are described by applying specific examples. The above description of the embodiments is only used to help understand the method of the present application and its core idea. The above description is only the preferred embodiment of the present application. It should be noted that due to the limited nature of the language, there are objectively infinite specific structures. For those skilled in the art, without departing from the principles of the present application, some improvements, refinements or changes can be made, and the above technical features can be combined in an appropriate manner. These improvements, refinements, changes or combinations, or the application of the present application without improvement to other occasions, should be considered as the protection scope of the present application.

Claims

1. An open sea anti-rough sea ship type smart net cage comprising a net cage (50), characterized in that, The net cage (50) is placed in the breeding assembly (10), the breeding assembly (10) comprises an upper through breeding frame (14), the breeding frame (14) can accommodate at least two net cages (50), and the breeding frame (14) is detachably connected with a limiting net plate (12) at the upper portion.

2. The deep offshore storm-resistant ship-shaped smart caged aquafarm of claim 1, wherein, The breeding frame (14) has a vertically arranged float pipe (15).

3. The deep offshore storm-resistant ship-form smart caged aquaculture system of claim 2, wherein, The upper end of the float pipe (15) is provided with an assembly column (17), the lower end of the limiting net plate (12) is provided with a first extension column (13) matched with the assembly column (17), and the first extension column (13) is connected with the assembly column (17) by a first fastener (11).

4. The deep offshore storm-resistant ship-shaped smart caged aquafarm of claim 1, wherein, The breeding assembly (10) is connected with a float (20) through a first connecting rope body (30) on the side.

5. The deep offshore storm-resistant ship-form smart caged aquaculture of claim 1, wherein, The breeding assembly (10) is connected with a first floating ball (31) through the first connecting rope body (30) on the side, the first floating ball (31) is connected with a second connecting rope body (34) through the first connecting rope body (30), and the second connecting rope body (34) is connected with anchor piles (33) at both ends.

6. The deep offshore storm-resistant ship-form smart caged aquaculture system of claim 5, wherein, A first ring body (32) is arranged on the first connecting rope body (30) between the first floating ball (31) and the second connecting rope body (34).

7. The deep offshore storm-resistant ship-form smart caged aquaculture system of claim 5, wherein, The second connecting rope body (34) has at least one knot.

8. The deep offshore storm-resistant ship-form smart caged aquaculture system of claim 5, wherein, The first floating ball (31) is connected with a positioning floating ball (40) through an auxiliary rope body above.

9. The deep offshore storm-resistant ship-shaped smart caged according to claim 1, characterized in that, The breeding frame (14) is connected with the float pipe (15) through a second rod body (19) on the side.

10. The deep offshore storm-resistant ship-shaped smart caged according to claim 1, characterized in that, The breeding frame (14) and the limiting net plate (12) are both provided with a mesh.

Citation Information

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